Solar-Storage-Charging Integrated Optimization Solution
Self-Generated, Self-Consumed · Surplus Power Not Fed to the Grid · No Grid-Connection Approval Required · Peak Shaving & Valley Filling

50%+ Annual Electricity Savings
Solar generation meets 60%–85% of annual power demand; peak shaving and valley filling significantly reduce peak-hour electricity costs.
Non-Grid-Connected, Approval-Free
Draws power from the grid only — never feeds power back to the grid, eliminating the need for complex grid-connection approval procedures and grid upgrades.
Grid Power as Backup Guarantee
Dual backup from storage plus grid power ensures uninterrupted agricultural production power even in extreme weather.
Six Core Advantages · Setting a New Benchmark for Agricultural Energy
Overall System Architecture
Uses a hybrid DC-coupled + AC-bypass architecture, made up of seven core subsystems, achieving coordinated optimization between energy supply and agricultural production.

Distributed Solar Power Generation System
Installed on greenhouse roofs and ground-mounted racks between greenhouses; N-type TOPCon dual-glass modules with conversion efficiency ≥26%.
Small-Scale LiFePO4 Storage System
5–20 kWh modular configuration, cycle life ≥5,000 times, built to withstand agricultural environments.
Non-Grid-Connected Energy Conversion System
Dedicated hybrid inverter with built-in anti-backflow protection, response time ≤10ms.
Smart Agricultural Load System
Loads classified by priority, enabling precise energy dispatch and intelligent load shifting.
Multi-Device Smart Charging System
Supports fast charging for agricultural drones, electric farm equipment, and other devices.
Integrated Smart Management Platform
Deep integration of energy management and agricultural control, enabling remote monitoring and intelligent scheduling.
Core Subsystem Optimization Design
1. Distributed Solar Power Generation System
| Greenhouse Area | Avg. Daily Power Use | Recommended Solar Capacity | Number of Modules | Installation Area |
|---|---|---|---|---|
| 2–3 mu (0.3–0.5 acres) | 15–25 kWh | 12–18 kWp | 21–31 panels | 75–105㎡ |
| 4–6 mu (0.6–1.0 acres) | 30–50 kWh | 22–38 kWp | 38–66 panels | 135–230㎡ |
| 7–10 mu (1.1–1.7 acres) | 55–80 kWh | 45–65 kWp | 78–112 panels | 270–390㎡ |
2. Small-Scale LiFePO4 Storage System
| Greenhouse Area | Peak-Hour Power Use | Recommended Storage Capacity | Configuration | Rated Voltage |
|---|---|---|---|---|
| 2–3 mu (0.3–0.5 acres) | 8–12 kWh | 5–10 kWh | 1–2 × 5kWh modules | 48V |
| 4–6 mu (0.6–1.0 acres) | 15–20 kWh | 10–15 kWh | 2–3 × 5kWh modules | 48V |
| 7–10 mu (1.1–1.7 acres) | 25–30 kWh | 15–20 kWh | 3–4 × 5kWh modules | 48V |

Real Return Data · A Clear View of Your Investment Payback
Based on a standard 5-mu (0.8-acre) smart agricultural greenhouse, with local agricultural peak-valley electricity rates of 0.85 RMB/kWh at peak and 0.35 RMB/kWh off-peak:
Total Investment Estimate by Greenhouse Size
| Greenhouse Area | Solar Capacity | Storage Capacity | Inverter Power |
|---|---|---|---|
| 2–3 mu (0.3–0.5 acres) | 12–18 kWp | 5–10 kWh | 20 kW |
| 4–6 mu (0.6–1.0 acres) | 22–38 kWp | 10–15 kWh | 35 kW |
| 7–10 mu (1.1–1.7 acres) | 45–65 kWp | 15–20 kWh | 50 kW |